Hani Cheikh Sleiman, Kevin M Moerman, Diana C De Oliveira, Joseph Jacob, Nesrin Mogulkoc, Brian R Davidson, Simon Walker-Samuel, Rebecca J Shipley
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The pipeline leverages a range of open-source software and libraries, notably <i>GIBBON</i>, <i>FEniCS</i> and <i>Paraview</i>, to provide flexibility and broad applicability across different simulation scenarios, ranging from biomedical to industrial applications. We demonstrate the versatility of our approach through five applications, including the mesh generation for soil-root systems, lung airways, microcirculation networks and portal vein networks, each originating from a different data source. Moreover, for several of these cases, we incorporate CFD simulations and strategies for 3D-1D coupling between the embedding domain and the embedded structures. Finally, we outline some future perspectives aimed at enhancing accuracy, reducing computational time and incorporating advanced modelling and boundary condition strategies to further refine the framework's capabilities.</p>","PeriodicalId":21525,"journal":{"name":"Royal Society Open Science","volume":"12 8","pages":"242025"},"PeriodicalIF":2.9000,"publicationDate":"2025-08-13","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"https://www.ncbi.nlm.nih.gov/pmc/articles/PMC12344289/pdf/","citationCount":"0","resultStr":"{\"title\":\"Tube2FEM: a general-purpose highly automated pipeline for flow-related processes in (embedded) tubular objects.\",\"authors\":\"Hani Cheikh Sleiman, Kevin M Moerman, Diana C De Oliveira, Joseph Jacob, Nesrin Mogulkoc, Brian R Davidson, Simon Walker-Samuel, Rebecca J Shipley\",\"doi\":\"10.1098/rsos.242025\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"<p><p>This paper presents an open-source pipeline for simulating flow and flow-related processes in (embedded) tubular structures. 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Tube2FEM: a general-purpose highly automated pipeline for flow-related processes in (embedded) tubular objects.
This paper presents an open-source pipeline for simulating flow and flow-related processes in (embedded) tubular structures. Addressing a gap in computational fluid dynamics (CFD) and simulation sciences, it facilitates the transition from raw three-dimensional imaging, graph networks or computer aided design (CAD) models of tubular objects to refined, simulation-ready meshes. This transition, traditionally labour-intensive, is streamlined through a series of innovative steps that include surface mesh processing, centre-line construction, anisotropic mesh generation and volumetric meshing, leading to finite element method (FEM) simulations. The pipeline leverages a range of open-source software and libraries, notably GIBBON, FEniCS and Paraview, to provide flexibility and broad applicability across different simulation scenarios, ranging from biomedical to industrial applications. We demonstrate the versatility of our approach through five applications, including the mesh generation for soil-root systems, lung airways, microcirculation networks and portal vein networks, each originating from a different data source. Moreover, for several of these cases, we incorporate CFD simulations and strategies for 3D-1D coupling between the embedding domain and the embedded structures. Finally, we outline some future perspectives aimed at enhancing accuracy, reducing computational time and incorporating advanced modelling and boundary condition strategies to further refine the framework's capabilities.
期刊介绍:
Royal Society Open Science is a new open journal publishing high-quality original research across the entire range of science on the basis of objective peer-review.
The journal covers the entire range of science and mathematics and will allow the Society to publish all the high-quality work it receives without the usual restrictions on scope, length or impact.